Related Experiment Video
Updated: May 19, 2026

Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Met acts through Abl to regulate p53 transcriptional outcomes and cell survival in the developing liver
Alessandro Furlan1, Fabienne Lamballe, Venturina Stagni
1Aix-Marseille Univ, IBDML, CNRS UMR 7288, Marseille, France.
Background & Aims:
Genetic studies indicate that distinct signaling modulators are each necessary but not individually sufficient for embryonic hepatocyte survival in vivo. Nevertheless, how signaling players are interconnected into functional circuits and how they coordinate the balance of cell survival and death in developing livers are still major unresolved issues. In the present study, we examined the modulation of the p53 pathway by HGF/Met in embryonic livers.
Methods:
We combined pharmacological and genetic approaches to biochemically and functionally evaluate p53 pathway modulation in primary embryonic hepatocytes and in developing livers. RT-PCR arrays were applied to investigate the selectivity of p53 transcriptional response triggered by Met.
Results:
Met recruits p53 to regulate the liver developmental program, by qualitatively modulating its transcriptional properties: turning on the Mdm2 survival gene, while keeping death and cell-cycle arrest genes Pmaip1 and p21 silent. We investigated the mechanism leading to p53 regulation by Met and found that Abl and p38MAPK are required for p53 phosphorylation on S(389), Mdm2 upregulation, and hepatocyte survival. Alteration of this signaling mechanism switches p53 properties, leading to p53-dependent cell death in embryonic livers. RT-PCR array studies affirmed the ability of the Met-Abl-p53 axis to modulate the expression of distinct genes that can be regulated by p53.
Conclusions:
A signaling circuit involving Abl and p38MAPK is required downstream of Met for the survival of embryonic hepatocytes, via qualitative regulation of the p53 transcriptional response, by switching its proapoptotic into survival properties.
Insights
The Met signaling pathway, with Abl and p38MAPK, controls embryonic liver cell survival by regulating the p53 pathway, promoting survival genes and preventing cell death during development.
Area of Science:
- Developmental biology
- Molecular signaling pathways
- Hepatocyte biology
Background:
- Embryonic hepatocyte survival is crucial for liver development.
- Distinct signaling modulators are necessary but not sufficient for survival.
- The interplay of signaling pathways in coordinating survival and death remains unclear.
Purpose of the Study:
- To investigate the modulation of the p53 pathway by HGF/Met in embryonic livers.
- To elucidate the molecular mechanisms by which Met influences p53 activity.
- To understand how this interaction impacts embryonic liver development and cell fate.
Main Methods:
- Combined pharmacological and genetic approaches in primary embryonic hepatocytes and developing livers.
- Biochemical and functional evaluation of p53 pathway modulation.
- RT-PCR arrays to analyze the transcriptional response of p53 triggered by Met signaling.
Main Results:
- Met recruits p53 to regulate liver development by modulating its transcriptional properties.
- The Met-Abl-p53 axis upregulates the survival gene Mdm2 while silencing pro-apoptotic genes.
- Abl and p38MAPK are essential for p53 phosphorylation and Mdm2 upregulation, ensuring hepatocyte survival.
Conclusions:
- A signaling circuit involving Abl and p38MAPK downstream of Met is critical for embryonic hepatocyte survival.
- This circuit qualitatively regulates the p53 transcriptional response, shifting it from pro-apoptotic to pro-survival.
- Disruption of this signaling mechanism leads to p53-dependent cell death in developing livers.
More Related Videos
08:50In Vitro Cultivation Techniques for Modeling Liver Organogenesis, Building Assembloids, and Designing Synthetic Tissues using Human Cell Lines
Published on: April 18, 2025
11:32Identification of Transcription Factor Regulators using Medium-Throughput Screening of Arrayed Libraries and a Dual-Luciferase-Based Reporter
Published on: March 27, 2020
Related Concept Videos
Abnormal Proliferation
Negative Regulator Molecules
DNA Damage can Stall the Cell Cycle
DNA Damage Can Stall the Cell Cycle
PI3K/mTOR/AKT Signaling Pathway
The Intrinsic Apoptotic Pathway